Cannizzaro S M, Padera R F, Langer R, Rogers R A, Black F E, Davies M C, Tendler S J, Shakesheff K M
Department of Chemical Engineering, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, USA.
Biotechnol Bioeng. 1998 Jun 5;58(5):529-35.
We describe the development of a novel biodegradable polymer designed to present bioactive motifs at the surfaces of materials of any architecture. The polymer is a block copolymer of biotinylated poly(ethylene glycol) (PEG) with poly(lactic acid) (PLA); it utilizes the high-affinity coupling of the biotin-avidin system to undergo postfabrication surface engineering. We show, using surface plasmon resonance analysis (SPR) and confocal microscopy that surface engineering can be achieved under aqueous conditions in short time periods. These surfaces interact with cell surface molecules and generate beneficial responses as demonstrated by the model study of integrin-mediated spreading of endothelial cells on polymer surfaces presenting RGD peptide adhesion sequences.
我们描述了一种新型可生物降解聚合物的研发情况,该聚合物旨在使生物活性基序呈现在任何结构的材料表面。这种聚合物是生物素化聚乙二醇(PEG)与聚乳酸(PLA)的嵌段共聚物;它利用生物素-抗生物素蛋白系统的高亲和力偶联作用进行制造后表面工程。我们通过表面等离子体共振分析(SPR)和共聚焦显微镜表明,表面工程可在水性条件下短时间内实现。如在呈现RGD肽粘附序列的聚合物表面上进行整合素介导的内皮细胞铺展的模型研究所示,这些表面与细胞表面分子相互作用并产生有益反应。